Built-In Electric Field Enhancement Strategy Induced by Cross-Dimensional Nano-Heterointerface Design for Electromagnetic Wave Absorption

Xin Li, Xinlei Wang, Minghang Li, Wenjie Zhu, Haojie Luo, Xiaoke Lu, Hailong Xu, Jimei Xue, Fang Ye, Hongjing Wu, Xiaomeng Fan

Research output: Contribution to journalArticlepeer-review

22 Scopus citations

Abstract

Nano-heterointerface engineering has been demonstrated to influence interfacial polarization by expanding the interface surface area and constructing a built-in electric field (BEF), thus regulating electromagnetic (EM) wave absorption. However, the dielectric-responsive mechanism of the BEF needs further exploration to enhance the comprehensive understanding of interfacial polarization, particularly in terms of quantifying and optimizing the BEF strength. Herein, a “1D expanded 2D structure” carbon matrix is designed, and semiconductor ZnIn2S4 (ZIS) is introduced to construct a carbon/ZIS heterostructure. The cross-dimensional nano-heterointerface design increases interface coupling sites by expanding the interface surface area and induces an increase in the Fermi level difference on both sides of the interface to modulate the distribution of interface charges, thereby strengthening the BEF at the interface. The synergistic effect leads to excellent EM absorption performance (minimum reflection coefficient RCmin = −67.4 dB, effective absorption bandwidth EAB = 6.0 GHz) of carbon/ZIS heterostructure. This work introduces a general modification model for enhancing interfacial polarization and inspires the development of new strategies for EM functional materials with unique electronic behaviors through heterointerface engineering.

Original languageEnglish
Article number2407217
JournalAdvanced Functional Materials
Volume35
Issue number18
DOIs
StatePublished - 2 May 2025

Keywords

  • built-in electric field
  • cross-dimensional
  • electromagnetic wave absorption
  • interfacial polarization
  • nano-heterointerface design

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